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Mitochondrial Calcium Signaling Regulates Branched-Chain Amino Acid Catabolism in Fibrolamellar Carcinoma

GSE291658 Homo sapiens Expression profiling by high throughput sequencing 6 samples Submitted 2025/04/11 Platform GPL16791
Summary
Metabolic adaptations are essential for survival. The mitochondrial calcium uniporter plays a key role in coordinating metabolic homeostasis by regulating mitochondrial metabolic pathways, and calcium signaling. However, a comprehensive analysis of uniporter-regulated mitochondrial pathways has remained unexplored. Here, we investigate consequences of uniporter loss- and gain-of-function using uniporter knockout cells and fibrolamellar carcinoma (FLC), which we demonstrate to have elevated mitochondrial calcium levels. We find that branched-chain amino acid (BCAA) catabolism, and the urea cycle are uniporter-regulated pathways. Reduced uniporter function boosts expression of BCAA catabolism genes, and the urea cycle enzyme ornithine transcarbamylase. In contrast, high uniporter activity in FLC suppresses their expression. This suppression is mediated by the transcription factor KLF15, a master regulator of liver metabolism. Thus, uniporter plays a central role in FLC-associated metabolic changes, including hyperammonemia. Our study identifies an important role for the uniporter in metabolic adaptation through transcriptional regulation of metabolism and elucidates its importance for BCAA and ammonia metabolism in FLC.
Published in
Mitochondrial calcium signaling regulates branched-chain amino acid catabolism in fibrolamellar carcinoma
Marsh NM, MacEwen MJS, Chea J et al. · Science advances 2025 · PMID 40435263 · doi:10.1126/sciadv.adu9512
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Also filed as BioProject PRJNA1234606 and SRA study SRP569636. Searching any of these in the dataset finder brings you back here.

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